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大应变剪切下软骨的各向异性和髁间异质性

Anisotropy and inter-condyle heterogeneity of cartilage under large-strain shear.

作者信息

Santos Stephany, Maier Franz, Pierce David M

机构信息

Department of Biomedical Engineering, University of Connecticut, 260 Glenbrook Road, Unit 3247, Storrs, CT 06269, United States.

Department of Mechanical Engineering, University of Connecticut, 191 Auditorium Road, Unit 3139, Storrs, CT 06269, United States.

出版信息

J Biomech. 2017 Feb 8;52:74-82. doi: 10.1016/j.jbiomech.2016.12.036. Epub 2016 Dec 30.

Abstract

We were the first to examine the mechanical responses of skeletally mature bovine femoral cartilage under large-strain simple shear (up to ±20%) using a multiaxial shear testing device. Since shear loading is critical in both tissue failure and chondrocyte responses, we aimed to probe (1) anisotropy with respect to the split-line direction (principal alignment of the collagen fibers near the articulating surface), (2) heterogeneity between femoral condyles, and (3) the influence of local cartilage thickness. We harvested a total of 48 cuboid cartilage specimens from four bovine knee joints. With each specimen we applied shear strains both parallel and perpendicular to the local split-line direction at a rate of 75μm/min and calculated the peak-to-peak shear stresses, shear strain-energy dissipation densities, and peak effective shear moduli. The Wilcoxon signed rank test revealed that the medial condyle was anisotropic in some mechanical measures at applied shear strains above 5%, while the lateral condyle was mechanically isotropic at all applied shear strains. The Kruskal-Wallis test revealed no significant differences in the median mechanical behavior of the lateral and medial condyles. Spearman׳s rank correlations revealed statistically significant negative monotonic correlations among thickness and most of our mechanical measures for both lateral and medial condyles at most applied strains and directions of applied shear. These results suggest that large-strain analyses account for nonlinear, anisotropic and location-dependent effects not fully realized at small strains. Our findings may inspire new experiments and models that consider anisotropy and heterogeneity of cartilage in ways previously ignored.

摘要

我们首次使用多轴剪切测试设备,研究了骨骼成熟的牛股骨软骨在大应变简单剪切(高达±20%)下的力学响应。由于剪切载荷在组织破坏和软骨细胞反应中都至关重要,我们旨在探究:(1)相对于分裂线方向(关节表面附近胶原纤维的主要排列方向)的各向异性;(2)股骨髁之间的异质性;(3)局部软骨厚度的影响。我们从四个牛膝关节共采集了48个长方体软骨标本。对每个标本,我们以75μm/min的速率在平行和垂直于局部分裂线方向施加剪切应变,并计算峰峰值剪应力、剪切应变能耗散密度和峰值有效剪切模量。Wilcoxon符号秩检验显示,在内侧髁在施加剪切应变高于5%时,某些力学指标表现出各向异性,而外侧髁在所有施加的剪切应变下均表现为力学各向同性。Kruskal-Wallis检验显示外侧和内侧髁的中位力学行为无显著差异。Spearman秩相关分析显示,在大多数施加应变和剪切方向下,外侧和内侧髁的厚度与我们的大多数力学指标之间存在统计学上显著的负单调相关性。这些结果表明,大应变分析考虑了小应变时未完全体现的非线性、各向异性和位置依赖性效应。我们的发现可能会激发新的实验和模型,以以前被忽视的方式考虑软骨的各向异性和异质性。

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